Search PubMedSearch

Biomedical subjects

W de Jong

Publications and source records attributed to W de Jong.

At least 19 recordsLinked to original sources

Differential effects of ACTH4-10, DG-AVP, and DG-OXT on heart rate and passive avoidance behavior in rats.

A computerized telemetry system was used to monitor heart rate (HR), core temperature (CT), and gross locomotor activity in rats treated with saline or neuropeptides during a passive avoidance behavior task. Rats were exposed to a single mild footshock (0.15 mA, for 3 s). Retention tests were conducted at 24 and 48 h after the learning trial. One h prior to the 24-h retention test, each rat received one of the following treatments (SC): saline (SAL), desglycinamide [Arg8]-vasopressin (DG-AVP), ACTH4-10, or desglycinamide-oxytocin (DG-OXT), at a dose of 3 micrograms/rat for DG-AVP and DG-OXT, and 50 micrograms/rat for ACTH4-10. Rats treated with SAL showed a modest increase in avoidance latency accompanied by bradycardia at both retention tests. Rats receiving DG-AVP retained the highest avoidance latency among the experimental groups at both the 24- and 48-h retention test. These rats showed a decrease in HR of the same magnitude as the SAL-treated animals at both retention tests. Rats treated with ACTH4-10 showed an increase in avoidance latency during the 24-h but not during the 48-h retention test. In addition, following ACTH4-10 treatment, a tachycardiac response was found during the 24-h retention test. DG-OXT induced both behavioral and cardiac responses opposite to those found in rats given DG-AVP. CT gradually increased while the rats remained on the platform, irrespective of the treatment. Changes in HR and CT were not influenced by somatomotor activity, as no difference in gross locomotor activity was found among the groups.(ABSTRACT TRUNCATED AT 250 WORDS)

Adrenocorticotropic Hormone

Hypothalamic blood flow autoregulation remains unaltered following surgical and pharmacological blockade of central vasopressin.

Experiments were carried out in urethane anaesthetized, ventilated rats to determine if brain arginine-vasopressin (AVP) plays a physiological role in cerebral blood flow autoregulation. Autoregulation was tested by determining local hypothalamic blood flow in the mediobasal hypothalamic area (HBF; H2-gas clearance technique) during consecutive stepwise lowering of systemic mean arterial pressure to 80, 60 and 40 mm Hg, by hemorrhage. Endogenous AVP was blocked by transecting the rostral, lateral and dorsal neuronal connections of the hypothalamus (including the median eminence) from all major brain areas, by bilateral transection of the vasopressin-containing fibres in the hypothalamo-hypophyseal tract to the median eminence at the level of the lateral retrochiasmatic area (RCAL), and finally by intracerebroventricular (i.c.v.) administration of an AVP antagonist, d(CH2)5Tyr(Me)AVP (AAVP). Significant increases of daily water intake indicated impaired vasopressin release following both types of surgical transection. Resting HBF was significantly elevated both after surgical isolation of the hypothalamus and after 10 ng AAVP administration compared to controls. Blood flow autoregulation in the hypothalamic region was seriously impaired following surgical isolation of the hypothalamus. However, HBF autoregulation remained just as effective as that of the control rats following either selective bilateral transection of the vasopressin pathways or following AAVP treatment. The present data indicate that AVP may play a role in the control of resting hypothalamic blood flow, but does not support a role of AVP in HBF autoregulatory mechanisms.

Animals

Effect of anaesthetics on the release of beta-endorphin-immunoreactivity in rat plasma.

Analgesia and anaesthesia produced by fentanyl, urethane and ether, but not pentobarbital, occurred concomitantly with an increase in the concentration of plasma beta-endorphin like immunoreactivity (BEIR), probably of pituitary origin. This increase was not associated with significant changes in pituitary or brainstem beta-endorphin content. Pretreatment with naloxone caused a reduction in plasma BEIR increase following Hypnorm, ether and urethane; and in the analgesia following Hypnorm and urethane. Pentobarbital, alone or in combination with naloxone, did not increase the concentration of plasma beta-endorphin. These results may indicate participation of endogenous opioids in the mechanism of action of urethane.

Analgesics

Effects of dynorphin A(1-13) and of fragments of beta-endorphin on blood pressure and heart rate of anesthetized rats.

The effect on blood pressure and heart rate of central administration of dynorphin A(1-13) and of beta-, gamma-, and alpha-endorphin related peptides was studied in urethane-anesthetized rats. Intracerebroventricular (i.c.v., 0.1-10 micrograms) administration of beta-endorphin resulted in a dose-dependent, naltrexone-reversible hypotension and bradycardia. N-terminally modified fragments of beta-endorphin did not reduce blood pressure and heart rate. On the other hand, a dose of 10 micrograms of beta-endorphin(1-27), which lacks the four C-terminal amino acid residues of beta-endorphin, induced a fall in blood pressure and had a biphasic effect on heart rate. These responses, however, were resistant to pretreatment with naltrexone. None of the fragments of beta-endorphin smaller than beta-endorphin(1-27) affected blood pressure when administered i.c.v. in a dose of 10 micrograms. A small transient bradycardia was observed after i.c.v. administration of 10 micrograms of beta-endorphin(1-26), alpha, and gamma-endorphin. The naltrexone-reversible bradycardic response of alpha- and gamma-endorphin was not present in des-tyrosine- and des-enkephalin-alpha- and gamma-endorphin and also not in alpha-endorphin(10-16) and gamma-endorphin(10-17). Upon i.c.v. administration (0.1-50 micrograms) a dose-dependent, naltrexone-reversible decrease in blood pressure and heart rate was induced by dynorphin A(1-13). The present data indicate a hypotensive influence of beta-endorphin, beta-endorphin(1-27), and dynorphin A(1-13), whereas other fragments of beta-endorphin had little or no effect on the cardiovascular parameters investigated.

Anesthesia

Role of brain dopamine systems in the development of hypertension in the spontaneously hypertensive rat.

We studied the role of central dopamine in the development of hypertension. Earlier work had shown that depletion of brain dopamine can inhibit the age-related rise in blood pressure in spontaneously hypertensive rats (SHR). In an open-field test, locomotor activity of Wistar-Kyoto controls was inhibited by haloperidol, apomorphine and sulpiride, but these drugs had less effect in SHR. The stimulation-evoked release of [3H]-dopamine from slices of the striatum of SHR was smaller than that from slices of WKY. The inhibition of the stimulation-evoked release of [3H]-dopamine by quinpirole was greater in SHR than in WKY. The results from the lesion experiments and from the behavioural activity studies would suggest an enhanced release of central dopamine in SHR, which might contribute to the development of hypertension in these animals. However, the in vitro release experiments (and subsequent in vivo microdialysis experiments) do not support such an enhanced release but rather showed decreased release of striatal dopamine in SHR.

Animals

Endogenous opioid peptides and blood pressure regulation during controlled, stepwise hemorrhagic hypotension.

In the present study, the role of the endogenous opioid peptide systems in the regulation of blood pressure during standardized, stepwise hemorrhagic hypotension was investigated in anesthetized rats. Central as well as peripheral administration of naloxone resulted in an increase in the bleeding volumes required to reduce blood pressure. Bleeding volumes also increased after the peripheral injection of naloxone methobromide, an analog of naloxone that does not readily cross the blood-brain barrier. Following central administration of antisera against beta- and alpha-endorphin and dynorphin A(1-13), the amount of blood that had to be withdrawn to induce hypotension was elevated. In rats treated with an antiserum against [Met5] enkephalin or gamma-endorphin, bleeding volumes did not differ from those of rats treated with control serum. These data indicate that activation of central and possibly also of peripheral opiate receptors plays a role in the control of blood pressure during blood loss. Dynorphin A(1-13), beta- and alpha-endorphin, or closely related peptides might be the endogenous ligands for the receptors that are blocked by naloxone.

Animals

Disturbed hypothalamic blood flow autoregulation in the rat following hypophysectomy: a role of pituitary beta-endorphin?

The effect of hypophysectomy on hypothalamic blood flow autoregulation was studied in anesthetized, artificially ventilated rats. Local hypothalamic blood flow (HBF, H2-gas clearance method) was measured. Efficiency of autoregulation was tested by determining HBF during standardized hemorrhagic hypotension when systemic arterial pressure was lowered to 80, 60 and 40 mm Hg by consecutive, step-wise bleeding. HBF autoregulation was well maintained until 80 mmHg, but not completely at 60 and 40 mmHg arterial pressure in the sham-operated control group. In contrast, autoregulation was abolished at all levels in the hypophysectomized rats: HBF followed the changes in arterial pressure in these animals. Following hypophysectomy, the concentration of immunoreactive beta-endorphin (beta-EP) decreased drastically in plasma but remained unchanged in cerebrospinal fluid. Administration of beta-EP (200 pg/100 g b. wt.) to hypophysectomized rats by the intravenous route had no effect on autoregulation, while intracerebroventricular administration of the same dose restored autoregulation. The present findings suggest that the pituitary plays a role in hypothalamic blood flow autoregulation.

Animals

Analysis of the cardiovascular changes evoked by microinjection of NaCl into the nucleus tractus solitarii of rats: evidence for a Na+/Ca2+ relationship.

The effect of various ionic solutions microinjected into the nucleus tractus solitarii (NTS) on blood pressure, heart rate and respiration rate was investigated in urethane-anesthetized rats. Unilateral microinjection of solutions containing NaCl (154 mM), NaCl (154 mM) and KCl (2.8 mM) or NaNO3 (154 mM) into a restricted area of the NTS evoked acute decreases in blood pressure, heart rate and respiration rate. However, calcium chloride (0.36-3.3 mM), present in the microinjection solutions, reduced the decrease in all 3 recorded parameters in a concentration-dependent manner. A disturbance in the Na+/Ca2+ ionic ratio may account for the changes evoked by the administered solutions. These results indicate the presence of a restricted area in the NTS which is sensitive to changes in some vegetative functions.

Animals

Central vasopressin impairs the baroreceptor heart rate reflex in conscious rats.

In conscious, unrestrained rats, the resting values of mean arterial blood pressure (BP) and heart rate (HR) as well as the baroreceptor heart rate reflex (BHR) were measured before and after intracerebroventricular (i.c.v.) application of arginine vasopressin (AVP). The BHR was induced by intravenous (i.v.) injection of different doses of phenylephrine. Basal values of BP and HR were 114 +/- 2.4 mm Hg and 376 +/- 13 beats/min (mean +/- SE). These values were not altered by i.c.v. application of vehicle or 5, 10, 30, 300, 3,000 pg AVP or 1 pg AVP antagonist [(D(CH2)5Tyr(Me)-AVP)]. Ten and 30 pg AVP administered i.c.v. attenuated the phenylephrine-induced decrease in HR. Lower or higher doses of AVP were not effective. Administration of the AVP antagonist i.c.v. sensitized the BHR. When the BHR was rechecked 24 h after treatment, the influence of the i.c.v.-administered peptides had disappeared. We conclude that AVP through the cerebrospinal fluid impairs the baroreflex regulation.

Animals

Alpha-methyldopa induces a naltrexone-insensitive antinociception and hypomotility in rats.

1. This study served to investigate whether endogenous opioid peptides play a role in the putative antinociceptive and the sedative actions of alpha-methyldopa. 2. In conscious normotensive rats, alpha-methyldopa induced hypotension, starting around 1 h and reaching a maximum 3-4 h after administration. Pretreatment with naltrexone resulted in an inhibition of alpha-methyldopa-induced hypotension. 3. alpha-Methyldopa dose-dependently increased hot plate latency which became evident after a 4 h lag period and reaching a maximum effect at 6 h. The antinociceptive effect of alpha-methyldopa was not affected by naltrexone. 4. In a small open field, alpha-methyldopa dose-dependently suppressed locomotion and sniffing behaviour. These effects of alpha-methyldopa were apparent 1 h after administration and were naltrexone-insensitive. 5. No changes in the level of beta-endorphin-like immunoreactivity in plasma and cerebrospinal fluid were observed after administration of alpha-methyldopa. 6. The results indicate that endogenous opioid peptides are involved in the hypotensive action of alpha-methyldopa but not in alpha-methyldopa-induced hypomotility and antinociception.

Analgesics

Differential central effects of mineralocorticoid and glucocorticoid agonists and antagonists on blood pressure.

Systolic blood pressure was measured, using an indirect tail method, in conscious male rats at several time intervals after the intracerebroventricular injection of mineralo-and glucocorticoid agonists and antagonists. Intracerebroventricular administration of the antimineralocorticoid RU 28318 (10 ng) decreased blood pressure, while the antiglucocorticoid RU 38486 (10 ng) caused an increase, which was slower in onset and of longer duration. The effect of the antimineralocorticoid was maximal at 8 h and had disappeared after 24 h. The antiglucocorticoid had a significant effect 24 and 48 h after injection. Neither antagonist was effective when administered sc at the same dose (10 ng). Intracerebroventricular administration of aldosterone (10 ng) and the selective glucocorticoid agonist RU 28362 (10 ng) increased and decreased blood pressure, respectively. Corticosterone given intracerebroventricularly (10-100 ng) did not affect blood pressure unless the dose was increased to 1 microgram. Two weeks after adrenalectomy a decrease in blood pressure was observed when the rats were given 0.9% saline instead of water to drink. Replacement therapy with corticosterone (12.5-mg steroid pellet, sc) restored blood pressure to the level in the sham-operated controls. The chronically elevated level of circulating corticosterone produced by a 100-mg sc corticosterone pellet increased blood pressure. The 12.5-and 100-mg sc corticosterone pellets resulted in plasma corticosterone levels of approximately 3 and 20 micrograms/100 ml, respectively. Intracerebroventricular administration of the glucocorticoid and mineralocorticoid antagonists (10 ng) increased and decreased, respectively, the blood pressure of the adrenalectomized rats receiving corticosterone substitution. From these data we conclude that corticosteroids can affect the central regulation of blood pressure. The mineralo- and glucocorticoids have opposite effects, which differ in onset and duration. The mineralocorticoids increased blood pressure, whereas the glucocorticoid decreased it.

Adrenalectomy

Participation of opiate receptors located in the nucleus tractus solitarii in the hypotension induced by alpha-methyldopa.

The local administration of the opiate receptor antagonist, naltrexone, into the nucleus tractus solitarii (NTS) inhibited the hypotension induced by systemically injected alpha-methyldopa in conscious rats. In addition, the local injection into the NTS of a beta-endorphin antiserum but not of antisera against [Met5]enkephalin and dynorphin A(1-13) prevented the alpha-methyldopa-induced hypotension. These results suggest a role of opiate receptors in the NTS, or in a closely located medullary site, in the centrally mediated hypotension induced by alpha-methyldopa.

Animals

Cardiovascular effects of increasing sodium chloride concentrations microinjected into the nucleus tractus solitarii of the rat.

Unilateral microinjection of increasing sodium chloride concentrations (154.0-256.6 mM) into the nucleus tractus solitarii (NTS) of urethane-anesthetized rats evoked hypotension and bradycardia. The effect was elicited only in a restricted area of the mediocaudal NTS. Microinjection of demineralized water, an isotonic sucrose solution and artificial cerebrospinal fluid were without effect. The possible existence of sodium-sensitive neurons in the NTS is discussed.

Animals

Beta-endorphin and central control of arterial blood pressure during challenge of circulatory homeostasis.

A variety of neurotransmitters and neuropeptides appear to participate in the central control mechanisms of arterial blood pressure. Our knowledge of these mechanisms is limited as yet. In the present study the involvement of the opioid peptide beta-endorphin in circulatory homeostasis was studied. Under conditions in which beta-endorphin does not affect basal blood pressure and heart rate this peptide had a pronounced prohypotensive influence in normotensive rats. This was found for two conditions during which circulatory homeostasis was challenged. Firstly, during blood letting in a rat model employed to test blood pressure regulation during hemorrhage, and secondly, for the central hypotensive action of alpha-methyldopa. In the first model hypotension was produced by stepwise bleeding to respectively 80, 60 and 40 mmHg mean arterial pressure. Intracerebroventricular (i.c.v.) administration of an antiserum raised against beta-endorphin or of naloxone (s.c. or i.c.v.) caused a significant increase in the required bleeding volume, whereas an opposite action was observed after the injection of morphine (s.c.) or of beta-endorphin (i.c.v.). The role of beta-endorphin in the hypotensive action of alpha-methyldopa, given intracisternally (i.c.) was evaluated in conscious rats equipped with chronic cannulas. Pretreatment with the opiate antagonist naltrexone (i.c.) caused an inhibition of the hypotension and bradycardia induced by alpha-methyldopa. This effect of the receptor antagonist was mimicked by i.c. administration of a beta-endorphin antiserum. Taken together, these data point to a hypotensive influence exerted by endogenous beta-endorphin under conditions during which circulatory homeostasis are challenged.

Animals

Central and peripheral opiate receptors appear to be activated during controlled haemorrhagic hypotension.

The present study investigated the question of whether peripheral or central opiate receptors are activated during controlled haemorrhagic hypotension. In anaesthetized Wistar rats, blood pressure was reduced by steps, by bleeding, to 80, 60 and 40 mmHg. Subcutaneous administration of 1 mg/kg of naloxone and of methyl naloxone-Br, an analogue of naloxone, which does not readily cross the blood-brain barrier, significantly elevated the bleeding volume at the 40-mmHg blood pressure level. A dose of 10 mg/kg of methyl naloxone-Br had no effect on the bleeding volume. We therefore conclude that during haemorrhage, endogenous opioid peptides activate both central and peripheral opiate receptors, thereby exerting a hypotensive influence.

Animals

Brain corticosteroid receptors and regulation of arterial blood pressure.

A single intracerebroventricular injection of 10 ng of the mineralocorticoid aldosterone in normotensive male Wistar rats induced a transient increase in blood pressure. Corticosterone produced this response only at a 100-fold higher dose. In contrast, a decrease in systolic blood pressure occurred following the intracerebroventricular administration of a selective glucocorticoid agonist (Ru 28362; 10 ng). The intracerebroventricular administration in normotensive and adrenalectomized, corticosterone-replaced, male rats of an antimineralocorticoid (Ru 28318; 10 ng) decreased systolic blood pressure, while an antiglucocorticoid (Ru 38486; 10 ng) caused an increase. These data suggest that adrenal steroids affect central mechanisms underlying cardiovascular regulation by binding to central mineralo- and glucocorticoid receptors.

Animals

Possible involvement of beta endorphin(1-31) and dynorphin(1-13) in the central hypotensive mechanism of action of alpha methyldopa.

The present study was performed to gain more information on the nature of the opioid peptide(s) involved in the mechanism of action of alpha-methyldopa. Conscious, normotensive Wistar rats were used and all treatments were given intracisternally. For blood pressure and heart rate, pretreatment with a midportion beta-endorphin antiserum resulted in a parallel shift to the right of the dose-response curve for alpha-methyldopa. In addition, when rats were pretreated with various dilutions of this antiserum and treated with a constant dose of alpha-methyldopa, the antiserum dose-dependently inhibited alpha-methyldopa-induced hypotension and bradycardia. Using antisera specifically recognizing the C-terminus of beta-, gamma- and alpha-endorphin, respectively, revealed that only the beta-endorphin antiserum inhibited the decrease in blood pressure seen after administration of alpha-methyldopa. An antiserum against [Met5]enkephalin did not influence the cardiovascular responses following alpha-methyldopa. On the other hand, a dynorphin(1-13) antiserum also inhibited in a dose-dependent manner the hypotension induced by alpha-methyldopa. When administered 3 h after the injection of alpha-methyldopa, the beta-endorphin and dynorphin(1-13) antisera failed to reverse the hypotension induced by alpha-methyldopa. The results favor a role for beta-endorphin(1-31) and dynorphin(1-13) in the hypotension centrally mediated by alpha-methyldopa.

Analgesics

Possible involvement of brain opioid peptides in clonidine-induced hypotension in spontaneously hypertensive rats.

The effect of intracisternal pretreatment with opiate antagonists or antisera against various opioid peptides on the hypotension and bradycardia induced by cumulative intracisternal administration of clonidine (0.02-2.5 microgram) was studied in conscious Wistar-Kyoto rats and in spontaneously hypertensive rats. No effect of any pretreatment on basal values of blood pressure and heart rate was detected in either of these strains. In spontaneously hypertensive rats intracisternal pretreatment with naltrexone resulted in a dose-dependent inhibition of clonidine-induced hypotension and bradycardia. DL-naloxone also antagonized the hypotension but not influence the hypotensive and bradycardic response to clonidine. In Wistar-Kyoto rats naltrexone and the beta-endorphin antiserum B4 failed to affect the cardiovascular effects of clonidine. B4 and an antiserum against dynorphin(1-13) inhibited clonidine-induced hypotension in spontaneously hypertensive rats, whereas a [Met5]enkephalin antiserum had no effect. Use of antisera specifically recognizing the C-terminus of beta-, alpha-, and gamma-endorphin, respectively, revealed that only the beta-endorphin antiserum inhibited the fall in blood pressure in spontaneously hypertensive rats after cumulative administration of clonidine. None of the antisera used affected clonidine-induced bradycardia. These results indicate that activation of stereospecific opiate receptors in spontaneously hypertensive, but not in Wistar-Kyoto rats, plays a role in the central hypotensive effect of clonidine. beta-Endorphin(1-31) and dynorphin(1-13) might be the endogenous ligands for these receptors.

Animals